Technical Field
[0001] The invention relates to an optical glass and optical element, wherein the optical
glass has a refractive index (nd) of 1.60∼1.65 and an Abbe number (vd) of 40∼46, in
particular to an optical glass with excellent negative anomalous dispersion (ΔPg,
F) performance and good environmental performance as well as an optical element.
Background
[0002] Optical glass is an indispensable important part in optical equipment and photoelectric
products. In the wake of widespread popularity of photoelectric products such as smart
phone and SLR camera in recent years, higher requirements are proposed for the performance
of the optical glass, for example, the optical glass is required to have the performance
of eliminating all or part of the residual chromatic aberration of the secondary spectrum
to the best extent possible, thus it is necessary for optical glass to provide a negative
anomalous dispersion performance.
[0003] At present, the known optical glass with the negative anomalous dispersion performance
adopts B
2O
3-Al
2O
3-PbO system, but the content of PbO in the glass of such system is larger, so the
chemical stability of the glass is poor, and the environmental requirements cannot
be met. For the glass system containing no PbO in the Chinese patent with the Publication
No. of
1225903, the German patent with the Publication No. of
4032566, the Chinese patent with the Publication No. of
102199001 and the United States patent with the Publication No. of
4200467, Ti or F, which is an element destroying the anomalous dispersion performance, is
introduced to these glass, or these glass contains more Nb
2O
5, which also destroys the anomalous dispersion performance of glass. In addition,
US4200467 contains a higher proportion of Na ion, but this will result in serious fractures
to the glass structure, increasing glass devitrification trend, and be extremely unfavorable
for the expansion coefficient, heat stability, chemical stability and mechanical strength
of the optical glass.
Summary
[0004] The technical problem to be solved by the present invention is to provide an environment-friendly
optical glass with excellent negative anomalous dispersion performance and optical
element.
[0005] To solve the technical problem, the present invention provides an optical glass with
negative anomalous dispersion, containing the following components by weight percentage:
0-5% of Nb
2O
5, exclusive of TiO
2 and F, wherein the relative partial dispersion of the optical glass Pg, F is less
than 0.57, and the negative anomalous dispersion ΔPg, F is less than or equal to -0.008.
[0006] Furthermore, it further contains the following components by weight percentage: 20-40%
of SiO
2, 15-40% of B
2O
3, 15-40% of Ta
2O
5, and 5-20% of ZrO
2, 5-15% of R
2O, wherein the R
2O includes one or more of K
2O, Na
2O and Li
2O; ZnO+WO
3+RO is 0-5%, and the RO includes one or more of BaO, SrO, CaO and MgO.
[0007] Furthermore, containing: 0-2% of Nb
2O
5.
[0008] Furthermore, containing: 22-38% of SiO
2.
[0009] Furthermore, containing: 16-40% of B
2O
3.
[0010] Furthermore, containing: 17-38% of Ta
2O
5.
[0011] Furthermore, containing: 6-19% of ZrO
2.
[0012] Furthermore, containing 6-14% of R
2O, wherein the R
2O includes one or more of K
2O, Na
2O and Li
2O.
[0013] Furthermore, containing ZnO, WO
3 and RO, and 1-4.5% of ZnO+WO
3+RO, wherein the RO includes one or more of BaO, SrO, CaO and MgO.
[0014] Furthermore, the refractive index of the optical glass is 1.60-1.65, and the Abbe
number is 40-46.
[0015] Furthermore, the negative anomalous dispersion ΔPg, F of the optical glass is less
than -0.01.
[0016] An optical element formed by using the optical glass with negative anomalous dispersion.
[0017] The beneficial effects of the present invention are as follows: there is no need
to add any non-environmentally friendly element into the optical glass provided by
the present invention, with the refractive index of 1.60-1.65, the Abbe number of
40-46, the relative partial dispersion Pg, F of less than 0.57, and the negative abnormal
dispersion ΔPg, F of less than and equal to -0.008, generally less than -0.01. Therefore,
this optical glass, with excellent negative anomalous dispersion performance and environmental
performance, is applicable to be extensively used in the digital camera, digital video,
camera phone, etc.
Detailed Description
[0018] The below will describe all components contained in the optical glass of the present
invention in detail, and these components are represented by weight percentage.
[0019] SiO
2, a glass formation body, is an oxide component necessary to form glass. A certain
amount of SiO
2 may make the optical glass have a better chemical stability, improve the transparency
of glass and increase the high temperature viscosity of glass. The chemical stability
of the glass is poor if the content of SiO
2 is less than 20%; the refractive index of glass may not within the required range
and the high temperature viscosity of glass is larger if the content of SiO
2 is higher than 40%. Therefore, the content of SiO
2 is 20-40%, preferably 22-38%.
[0020] B
2O
3 is also a network formation oxide of optical glass, and it plays the most important
role in reducing the shortwave dispersion of glass and improving the negative anomalous
dispersion of glass in the present invention. If the content of B
2O
3 is less than 15%, the high temperature viscosity of glass is high, and both the melting
property and the negative anomalous dispersion are poor; but if the content of B
2O
3 is higher than 40%, the chemical stability of glass gets worse, and glass is easy
to subject to devitrification. Therefore, the content of B
2O
3 is 15-40%, preferably 16-40%.
[0021] Ta
2O
5 is an oxide which can remarkably improve the refractive index and negative anomalous
dispersion of optical glass, and a better negative anomalous dispersion performance
is obtained in the present invention through addition of Ta
2O
5. If the content of Ta
2O
5 is less than 15%, the purpose of obtaining a better negative anomalous dispersion
performance will be never achieved; but if the content of Ta
2O
5 is higher than 40%, the melting property of glass gets worse, and it is difficult
to form glass with a better homogeneity, thus increasing the production cost of glass.
Therefore, the content of Ta
2O
5 is 15-40%, preferably 17-38%.
[0022] ZrO
2 can improve the refractive index and the negative anomalous dispersion performance
of optical glass, but it cannot function if the content of ZrO
2 is less than 5%; if the content of ZrO
2 is higher than 20%, this refractory oxide will result in poor melting property of
glass, thus not obtaining glass with good homogeneity. Therefore, the content of ZrO
2 is 5-20%, preferably 6-19%.
[0023] R
2O, an alkali metal oxide, is one or more of K
2O, Na
2O, Li
2O, and a better glass flux, and optical glass with better homogeneity can be obtained
through adding a moderate amount of R
2O. However, if the total amount of R
2O is less than 5%, fluxing will not function, and the high temperature viscosity of
glass may be larger; if the total amount of R
2O is higher than 15%, the chemical stability of optical glass will get worse. Therefore,
the content of R
2O is 5-15%, preferably 6-14%. Furthermore, a lower percentage of Na
2O is used in the present invention, and assisted with other components, so that the
glass is not easy to subject to devitrification, and it is extremely favorable for
the expansion coefficient, heat stability, chemical stability and mechanical strength
of the optical glass. Specifically, the content of Na
2O in the present invention is 0-12%, preferably 2-8%.
[0024] Nb
2O
5 can effectively improve the refractive index of glass, and will obviously increase
the dispersion of the shortwave part at the same time of increasing the dispersion
of the medium wave part, consequently to increase the negative anomalous dispersion
performance of the optical glass. But if the content of Nb
2O
5 is too high, the negative anomalous dispersion performance will be destroyed. The
present invention can not only obtain a good negative anomalous dispersion performance,
but also reduce the cost of glass through reducing the content of Nb
2O
5. Therefore, the content of Nb
2O
5 is 0-5%, preferably 0-2%.
[0025] ZnO, WO
3, RO can effectively regulate the refractive index and the Abbe number of glass, wherein
RO, an alkaline earth metal oxide, is one or more of BaO, SrO, CaO, MgO. The total
content of ZnO, WO
3 and RO (ZnO+WO
3+RO) is 0-5%, preferable 1-4.5%.
[0026] Moreover, TiO
2 and F in any form which will destroy the negative anomalous dispersion performance
will not be introduced to the present invention.
[0027] The optical glass provided by the present invention is made according to the preparation
method known by a person skilled in the art, i.e., melting, clarifying, stirring the
raw materials for homogenization, lowering the temperature to a proper temperature
for molding, then obtaining the optical glass provided by the present invention, with
the refractive index of 1.60-1.65, the Abbe number of 40-46 and having an excellent
negative anomalous dispersion performance.
[0028] Each performance parameter of the optical glass provided by the present invention
is tested by the following methods:
The refractive index, Abbe number and Pg, F are measured as per Test Methods of Colourless Optical Glass (GB/T 7962.1-2010): Refractive Index and Coefficient of Dispersion.
[0029] Verified by the test, the optical glass provided by the present invention has the
following properties: the refractive index (nd) ranges from 1.60 to 1.65, the Abbe
number (vd) ranges from 40 to 46, relative partial dispersion ΔPg, F is less than
0.57, and the negative anomalous dispersion is less than or equal to -0.008, generally
ΔPg,F is less than -0.01, having good chemical stability and environmental performance.
[0030] The present invention further provides an optical element formed by the optical glass
in the present invention, so this optical element has all above-mentioned properties
of the optical glass in the present invention. The optical element of the present
invention has greater negative anomalous dispersion, and there is no need to add any
non-environmentally friendly element, with the refractive index (nd) of 1.60-1.65,
and the Abbe number (vd) of 40-46. The optical element provided by the present invention
is applied to the digital camera, digital video, camera phone, etc.
Embodiments
[0031] To further understand the technical scheme of the present invention, preferred implementations
of the present invention will be described by combining the following specific embodiments.
But it should be noted and understood that, these embodiments are only to better describe
the characteristics and advantages of the present invention, without limiting the
claims of the present invention.
[0032] The optical glass provided by the embodiments 1-30 in the present invention contains
the components by weight percentage and corresponding properties as shown in Tables
1-3. The desired optical glass can be obtained by weighing the components of the optical
glass in each embodiment according to the weight percentage in Tables 1-3, and adding
them into an optical glass smelter after uniformly mixing; and pouring the molten
glass into the pre-heated metal mold for molding and annealing after melting, clarification,
stirring for homogenization at a proper process temperature and lowering the temperature
to a proper temperature. The present invention provides an optical glass with excellent
negative anomalous dispersion performance, containing the components and corresponding
properties as below: results of the refractive index (vd), dispersion (nF-nC), Abbe
number (vd), relative partial dispersion (Pg, F), negative anomalous dispersion (ΔPg,
F) are as shown in embodiments 1-30 from Table 1 to Table 3. Thus, Pg, F and ΔPg,
F are explained by using the following formula.

[0033] In the above formula, the relative partial dispersion is calculated by the formula
(1). For most glass, the linear relation of the formula (2) exists: select H-K6 and
F4 as the reference glass, and obtain the slope mx,y and the intercept bx,y; then
select the optical glass with the negative anomalous dispersion performance of the
present invention to correct the aberration; ΔPx, y in the formula (3) represents
this deviation value; and finally the specific value of ΔPg, F is calculated by the
formula (4).
Table 1
Component (wt%) |
Embodiments |
1 |
2 |
3 |
4 |
5 |
6 |
7 |
8 |
9 |
10 |
SiO2 |
22.5 |
20.21 |
26.95 |
25.06 |
21.21 |
37.1 |
20.07 |
22.13 |
22.45 |
23.37 |
B2O3 |
27.5 |
24.39 |
22.46 |
25.06 |
30.75 |
15.38 |
35.69 |
29.51 |
26.00 |
23.93 |
ZrO2 |
10.83 |
14.98 |
13.17 |
5.64 |
5.3 |
9.05 |
7.43 |
6.15 |
5.00 |
6.54 |
Ta2O5 |
24.58 |
22.65 |
29.79 |
28.82 |
29.69 |
21.72 |
23.05 |
28.96 |
26.35 |
28.05 |
K2O |
6.67 |
8.71 |
3.74 |
6.27 |
5.3 |
9.05 |
5.2 |
4.1 |
6.86 |
4.67 |
Li2O |
0 |
1.05 |
0.45 |
0 |
0 |
0 |
1.49 |
1.64 |
2.32 |
1.87 |
Na2O |
2.5 |
4.53 |
1.95 |
2.51 |
2.12 |
1.81 |
1.49 |
1.93 |
2.73 |
2.21 |
R2O |
9.17 |
14.29 |
6.14 |
8.78 |
7.42 |
10.86 |
8.18 |
7.67 |
11.90 |
8.75 |
Nb2O5 |
1.67 |
0 |
0 |
1.88 |
1.59 |
1.36 |
1.12 |
1.64 |
3.55 |
4.67 |
ZnO WO3+ +RO |
3.74 |
3.49 |
1.5 |
4.76 |
4.03 |
4.52 |
4.46 |
4.22 |
4.75 |
4.67 |
Total |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
nd |
1.615 29 |
1.619 75 |
1.625 29 |
1.622 02 |
1.615 12 |
1.605 41 |
1.601 03 |
1.616 37 |
1.619 73 |
1.636 48 |
nF-nC |
0.013 59 |
0.013 47 |
0.013 63 |
0.013 86 |
0.013 86 |
0.013 18 |
0.013 32 |
0.013 76 |
0.013 89 |
0.015 07 |
vd |
45.29 |
46 |
45.87 |
44.87 |
44.37 |
45.95 |
45.14 |
44.81 |
44.63 |
42.25 |
Pg,F |
0.558 2 |
0.557 6 |
0.556 8 |
0.558 7 |
0.557 9 |
0.559 2 |
0.558 6 |
0.556 8 |
0.558 9 |
0.562 8 |
ΔPg,F |
-0.01 04 |
-0.00 98 |
-0.01 08 |
-0.01 06 |
-0.01 22 |
-0.00 82 |
-0.01 02 |
-0.01 26 |
-0.01 08 |
-0.01 09 |
Table 2
Component (wt%) |
Embodiments |
11 |
12 |
13 |
14 |
15 |
16 |
17 |
18 |
19 |
20 |
SiO2 |
21.28 |
20.13 |
20.31 |
21.29 |
21.17 |
20 |
23.86 |
22.62 |
26.43 |
40 |
B2O3 |
24.19 |
25.16 |
25.85 |
24.33 |
25.4 |
25.45 |
15.51 |
23.81 |
19.58 |
15.39 |
ZrO2 |
6.77 |
7.05 |
13.85 |
11.41 |
13.29 |
16.12 |
19.28 |
10.48 |
19.58 |
8.17 |
Ta2O5 |
29.02 |
30.19 |
25.85 |
29.66 |
27.57 |
24.6 |
25.45 |
35.71 |
15.47 |
19.61 |
K2O |
4.84 |
5.03 |
2.77 |
6.08 |
2.95 |
5.09 |
4.77 |
3.1 |
6.85 |
8.17 |
Li2O |
1.93 |
2.01 |
0.92 |
0 |
0.85 |
0.85 |
2.39 |
0.36 |
1.96 |
0 |
Na2O |
2.28 |
2.38 |
2.59 |
2.28 |
2.37 |
2.38 |
3.98 |
1.55 |
2.31 |
1.63 |
R2O |
9.05 |
9.42 |
6.28 |
8.36 |
6.17 |
8.32 |
11.14 |
5 |
11.12 |
9.8 |
Nb2O5 |
4.84 |
4.03 |
3.69 |
1.52 |
1.77 |
1.7 |
0 |
1.19 |
3.92 |
3.61 |
ZnO |
4.83 |
4.03 |
4.15 |
3.42 |
4.62 |
3.82 |
4.77 |
1.19 |
3.92 |
3.41 |
WO3+ +RO |
|
|
|
|
|
|
|
|
|
|
Total |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
nd |
1.646 62 |
1.643 82 |
1.645 16 |
1.636 66 |
1.639 30 |
1.637 49 |
1.650 00 |
1.646 45 |
1.637 09 |
1.600 00 |
nF-nC |
0.015 94 |
0.015 39 |
0.015 02 |
0.014 72 |
0.014 69 |
0.014 41 |
0.014 96 |
0.015 20 |
0.014 02 |
0.013 09 |
vd |
40.56 |
41.84 |
42.94 |
43.26 |
43.53 |
44.23 |
43.46 |
42.54 |
45.45 |
45.84 |
Pg,F |
0.567 5 |
0.563 2 |
0.561 8 |
0.560 2 |
0.560 6 |
0.560 3 |
0.563 1 |
0.561 0 |
0.560 3 |
0.559 5 |
ΔPg,F |
-0.00 91 |
-0.01 12 |
-0.01 08 |
-0.01 18 |
-0.01 10 |
-0.01 01 |
-0.00 86 |
-0.01 23 |
-0.00 80 |
-0.00 81 |
Table 3
Component (wt%) |
Embodiments |
21 |
22 |
23 |
24 |
25 |
26 |
27 |
28 |
29 |
30 |
SiO2 |
20 |
34.23 |
26.45 |
22.3 |
24.36 |
23.15 |
21.12 |
23.37 |
30.05 |
20.21 |
B2O3 |
40 |
15 |
19.56 |
27.52 |
21.03 |
24.11 |
31.68 |
23.03 |
16.45 |
37.61 |
ZrO2 |
6.62 |
8.58 |
20 |
5 |
9.26 |
6.53 |
5.09 |
6.54 |
5.38 |
6.5 |
Ta2O5 |
23.27 |
20.86 |
15 |
24.42 |
40 |
27.99 |
28.5 |
35 |
38.01 |
21.87 |
K2O |
0 |
7.64 |
6.85 |
7.27 |
3.98 |
4.67 |
5.09 |
4.67 |
5.02 |
4.46 |
Li2O |
0 |
2.62 |
1.96 |
2.08 |
0 |
1.86 |
0 |
1.87 |
1.55 |
1.05 |
Na2O |
5.12 |
4.74 |
2.31 |
2.45 |
1.38 |
2.2 |
2.04 |
2.21 |
2.06 |
1.3 |
R2O |
5.12 |
15 |
11.12 |
11.8 |
5.36 |
8.73 |
7.13 |
8.75 |
8.63 |
6.81 |
Nb2O5 |
5 |
1.32 |
3.92 |
4.16 |
0 |
4.67 |
1.53 |
1.8 |
1.48 |
2.62 |
ZnO WO3+ +RO |
0 |
5 |
3.96 |
4.8 |
0 |
4.82 |
4.96 |
1.5 |
0 |
4.37 |
Total |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
100 |
nd |
1.600 18 |
1.617 38 |
1.627 63 |
1.615 45 |
1.650 00 |
1.639 93 |
1.612 48 |
1.637 95 |
1.643 77 |
1.600 05 |
nF-nC |
0.013 06 |
0.013 46 |
0.014 02 |
0.013 67 |
0.015 29 |
0.016 00 |
0.013 88 |
0.015 03 |
0.014 92 |
0.013 51 |
vd |
45.95 |
45.87 |
44.76 |
45.01 |
42.52 |
40 |
44.13 |
42.43 |
43.15 |
44.42 |
Pg,F |
0.557 8 |
0.558 8 |
0.561 0 |
0.558 6 |
0.561 2 |
0.566 7 |
0.557 8 |
0.561 5 |
0.563 6 |
0.561 8 |
ΔPg,F |
-0.00 96 |
-0.00 88 |
-0.00 85 |
-0.01 04 |
-0.01 21 |
-0.01 09 |
-0.01 27 |
-0.01 19 |
-0.00 86 |
-0.00 83 |
[0034] As illustrated in the above embodiments, there is no need to add any non-environmentally
friendly element into the optical glass provided by the present invention, with the
refractive index of 1.60-1.65, the Abbe number of 40-46, the relative partial dispersion
Pg, F of less than 0.57, and the negative anomalous dispersion ΔPg, F of less than
and equal to -0.008, generally less than -0.01. Therefore, the optical glass, with
excellent negative anomalous dispersion performance, chemical stability and environmental
performance, is extensively applied to digital camera, digital video, camera phone,
etc.
1. An optical glass with negative anomalous dispersion, comprising the components by
weight percentage as follows: 0-5% of Nb2O5, exclusive of TiO2 and F, wherein the relative partial dispersion of the optical glass Pg, F is less
than 0.57, and the negative anomalous dispersion ΔPg, F is less than or equal to -0.008.
2. The optical glass with negative anomalous dispersion according to claim 1, further
containing the following components by weight percentage: 20-40% of SiO2, 15-40% of B2O3, 15-40% of Ta2O5, and 5-20% of ZrO2, 5-15% of R2O, wherein the R2O includes one or more of K2O, Na2O and Li2O; ZnO+WO3+RO is 0-5%, and the RO includes one or more of BaO, SrO, CaO and MgO.
3. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
0-2% of Nb2O5.
4. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
22-38% of SiO2.
5. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
16-40% of B2O3.
6. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
17-38% of Ta2O5.
7. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
6-19% of ZrO2.
8. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
6-14% of R2O, wherein the R2O includes one or more of K2O, Na2O and Li2O.
9. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
ZnO, WO3 and RO and 1-4.5% of ZnO+WO3+RO, wherein the RO includes one or more of BaO, SrO, CaO and MgO.
10. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
0-12% of Na2O.
11. The optical glass with negative anomalous dispersion according to claim 1 or 2, containing
2-8% of Na2O.
12. The optical glass with negative anomalous dispersion according to any of claims 1
to 11, wherein the refractive index of the optical glass is 1.60-1.65, and the Abbe
number is 40-46.
13. The optical glass with negative anomalous dispersion according to any of claims 1
to 11, wherein the negative anomalous dispersion ΔPg, F of the optical glass is less
than -0.01.
14. An optical element formed by using the optical glass with negative anomalous dispersion
according to any of claims 1 to 13.